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Published on: August 20, 2019
SMAD4 loss-of-function mutation predisposes to congenital heart disease
Yin Wang1, Ying-Jia Xu2, Chen-Xi Yang2
1Department of Cardiology, Tongren Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai, 200336, China.
Insights
A novel SMAD4 gene variation (Tyr95*) is linked to congenital heart disease (CHD) in a large family. This discovery deepens our understanding of CHD
Area of Science:
- Genetics
- Cardiovascular Biology
- Developmental Biology
Background:
- Congenital heart disease (CHD) is a common birth defect with a significant genetic component.
- Genetic factors underlying CHD are complex and often remain unidentified due to genetic heterogeneity.
Purpose of the Study:
- To identify the genetic cause of autosomal-dominant CHD in a four-generation family.
- To investigate the functional impact of a novel SMAD4 gene variation on cardiovascular development.
Main Methods:
- Whole-exome sequencing and Sanger sequencing were used to identify genetic variations.
- Dual-reporter gene assays were performed to assess the functional consequences of the SMAD4 variation.
Main Results:
- A heterozygous truncating variation in the SMAD4 gene (c.285T>A; p.(Tyr95*)) co-segregated with CHD in the family.
- The Tyr95* SMAD4 variant impaired transactivation of downstream targets NKX2.5 and ID2 and abolished synergistic activation with GATA4.
- This variation was absent in control subjects.
Conclusions:
- The identified SMAD4 variation is strongly associated with autosomal-dominant CHD.
- This finding elucidates a potential molecular mechanism in CHD pathogenesis.
- Implications for precise antenatal prevention and risk stratification in CHD patients.
Abstract:
Congenital heart disease (CHD) represents the most frequent developmental deformity in human beings and accounts for substantial morbidity and mortality worldwide. Accumulating investigations underscore the strong inherited basis of CHD, and pathogenic variations in >100 genes have been related to CHD. Nevertheless, the heritable defects underpinning CHD remain elusive in most cases, mainly because of the pronounced genetic heterogeneity. In this investigation, a four-generation family with CHD was recruited and clinically investigated. Via whole-exome sequencing and Sanger sequencing assays in selected family members, a heterozygous variation in the SMAD4 gene (coding for a transcription factor essential for cardiovascular morphogenesis), NM_005359.6: c.285T > A; p.(Tyr95*), was identified to be in co-segregation with autosomal-dominant CHD in the entire family. The truncating variation was not observed in 460 unrelated non-CHD volunteers employed as control subjects. Functional exploration by dual-reporter gene analysis demonstrated that Tyr95*-mutant SMAD4 lost transactivation of its two key downstream target genes NKX2.5 and ID2, which were both implicated with CHD. Additionally, the variation nullified the synergistic transcriptional activation between SMAD4 and GATA4, another transcription factor involved in CHD. These data strongly indicate SMAD4 may be associated with CHD and shed more light on the molecular pathogenesis underlying CHD, implying potential implications for antenatal precise prevention and prognostic risk stratification of the patients affected with CHD.
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